3d Image Reconstruction For Ct And Pet Av Daniele Panetta, Niccolo Camarlinghi

3d Image Reconstruction For Ct And Pet Av Daniele Panetta, Niccolo Camarlinghi

This is a practical guide to tomographic image reconstruction with projection data, with strong focus on Computed Tomography (CT) and Positron Emission Tomography (PET). Classic methods such as FBP, ART, SIRT, MLEM and OSEM are presented with modern and compact notation, with the main goal of guiding the reader from......
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<p>This is a practical guide to tomographic image reconstruction with projection data, with strong focus on Computed Tomography (CT) and Positron Emission Tomography (PET). Classic methods such as FBP, ART, SIRT, MLEM and OSEM are presented with modern and compact notation, with the main goal of guiding the reader from the comprehension of the mathematical background through a fast-route to real practice and computer implementation of the algorithms. Accompanied by example data sets, real ready-to-run Python toolsets and scripts and an overview the latest research in the field, this guide will be invaluable for graduate students and early-career researchers and scientists in medical physics and biomedical engineering who are beginners in the field of image reconstruction.</p><p> </p><ul><li>A top-down guide from theory to practical implementation of PET and CT reconstruction methods, without sacrificing the rigor of mathematical background</li><li>Accompanied by Python source code
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This is a practical guide to tomographic image reconstruction with projection data, with strong focus on Computed Tomography (CT) and Positron Emission Tomography (PET). Classic methods such as FBP, ART, SIRT, MLEM and OSEM are presented with modern and compact notation, with the main goal of guiding the reader from the comprehension of the mathematical background through a fast-route to real practice and computer implementation of the algorithms. Accompanied by example data sets, real ready-to-run Python toolsets and scripts and an overview the latest research in the field, this guide will be invaluable for graduate students and early-career researchers and scientists in medical physics and biomedical engineering who are beginners in the field of image reconstruction.A top-down guide from theory to practical implementation of PET and CT reconstruction methods, without sacrificing the rigor of mathematical backgroundAccompanied by Python source code snippets, suggested exercises, and supplementary ready-to-run examples for readers to download from the CRC Press websiteIdeal for those willing to move their first steps on the real practice of image reconstruction, with modern scientific programming language and toolsetsDaniele Panetta is a researcher at the Institute of Clinical Physiology of the Italian National Research Council (CNR-IFC) in Pisa. He earned his MSc degree in Physics in 2004 and specialisation diploma in Health Physics in 2008, both at the University of Pisa. From 2005 to 2007, he worked at the Department of Physics "E. Fermi" of the University of Pisa in the field of tomographic image reconstruction for small animal imaging micro-CT instrumentation. His current research at CNR-IFC has as its goal the identification of novel PET/CT imaging biomarkers for cardiovascular and metabolic diseases. In the field micro-CT imaging, his interests cover applications of three-dimensional morphometry of biosamples and scaffolds for regenerative medicine. He acts as reviewer for scientific journals in the field of Medical Imagin Physics in Medicine and Biology, Medical Physics, Physica Medica, and others. Since 2012, he is adjunct professor in Medical Physics at the University of Pisa.Niccolò Camarlinghi is a researcher at the University of Pisa. He obtained his MSc in Physics in 2007 and his PhD in Applied Physics in 2012. He has been working in the field of Medical Physics since 2008 and his main research fields are medical image analysis and image reconstruction. He is involved in the development of clinical, pre-clinical PET and hadron therapy monitoring scanners. Atthetimeofwritingthisbook he was a lecturer at University of Pisa, teaching courses of life-sciences and medical physics laboratory. He regularly acts as a referee for the following journals: Medical Physics, Physics in Medicine and Biology, Transactions on Medical Imaging, Computers in Biology and Medicine, Physica Medica, EURASIP Journal on Image and Video Processing, Journal of Biomedical and Health Informatics.

Produktinformasjon

Oppdag 3D Bildekonstruksjon for CT og PET

Er du klar for å dykke inn i den fascinerende verden av 3D Bildekonstruksjon for CT og PET av Daniele Panetta og Niccolò Camarlinghi? Denne praktiske guiden gir deg verktøyene du trenger for å forstå og implementere moderne tomografiske bildeteknikker. Enten du er student eller ny i feltet, vil dette være din beste venn i jakten på kunnskap!

Hva du vil lære

  • Tradisjonelle metoder: Forstå algoritmene FBP, ART, SIRT, MLEM og OSEM på en lettfattelig måte.
  • Praktisk tilnærming: Gå fra teori til praksis med hurtig forslag til hvordan du kan implementere disse metodene.
  • Python-kode: Få tilgang til kodeeksempler og verktøysett som kan brukes direkte i prosjektet ditt.
  • Eksempler fra virkeligheten: Jobb med faktiske datasett for å se hvordan metoder fungerer i praksis.

For hvem er boken?

Dette er et ideelt verktøy for mastergradsstudenter, nyutdannede forskere og teknikere innen medisinsk fysikk og biomedisinsk ingeniørkunst. Hvis du er en av dem som ønsker å ta de første skrittene i bildekonstruksjon, har du funnet den riktige veiledningen.

Ekspertene bak boken

Med autorer som Daniele Panetta og Niccolò Camarlinghi, som begge har betydelig bakgrunn innen medisinsk fysikk, vil du dra nytte av deres erfaring og ekspertise. Panetta, med sitt arbeid ved CNR-IFC i Pisa, og Camarlinghi, nå en lærer ved Universitetet i Pisa, gir deg både teoretiske og praktiske perspektiver.

Unik kunnskap for din karriere

Ikke gå glipp av sjansen til å berike din forståelse av 3D Bildekonstruksjon for CT og PET. Denne guiden vil ikke bare gi deg nødvendige verktøy, men også inspirere deg til å utforske nye muligheter innen medisinsk bildebehandling!

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Produktnavn3D Image Reconstruction for CT and PET A Practical Guide with Python
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